HUMIDITY CONTROL AND AIR CONDITIONING SYSTEM
A humidity control and air-conditioning system for a vehicle having a plurality of heat exchangers which are coated with desiccant. The heat exchangers are configured to alternate between a cooling mode and a regeneration mode. In the cooling mode cooled refrigerant is circulated in the heat exchanger and air is passed over the heat exchanger thus cooling and drying the air. In the regeneration mode the heat exchanger is heated by heat generated by an engine and air is passed over the heat exchanger to assist in removing moisture from the desiccant.
The present invention relates to a humidity control and air conditioning system. More particularly, the present invention relates to a humidity control and air conditioning system that uses evaporators which are coated in desiccant.
Humidity control and air conditioning systems are used in automobiles and buses to provide a comfortable environment for occupants. Removing excess moisture from the air, without overcooling the air, makes the interior of the vehicle comfortable for the occupants.
SUMMARYIn one embodiment, the invention provides a humidity control and air conditioning system for a vehicle having a conditioned space. The humidity control and air conditioning system includes two heat exchangers, each heat exchanger being coated with desiccant. The heat exchangers are configured to operate in a cooling mode or a regeneration mode. In the cooling mode, cooled refrigerant is introduced into the heat exchanger operating the cooling mode, air is passed through the heat exchanger, the air is cooled, and moisture from the air is adsorbed by the desiccant. In the regeneration mode, hot air or exhaust passes over the heat exchanger operating in the regeneration mode and the heated air removes moisture from the desiccant. The humidity control and air conditioning system is capable of alternating the heat exchangers between the cooling mode and the regeneration mode. The humidity control and air conditioning system also includes dampers and a plurality of air ducts to selectively direct air through the heat exchangers. Air is directed from the atmosphere via air ducts and dampers to a heat exchanger operating in the cooling mode and then to the passenger compartment. Air is directed from the atmosphere via air ducts and dampers to a heat exchanger operating in the regeneration mode and then to the atmosphere.
In another embodiment, the invention provides a method for dehumidifying air entering a vehicle. The method comprises alternating first and second heat exchangers, each being coated with desiccant, between a cooling mode and a regeneration mode. The first heat exchanger is set to a cooling mode which directs cooled refrigerant into the first heat exchanger, air is then passed through the first heat exchanger in order to cool the air and remove moisture from the air, then the air is discharged into a passenger compartment of the vehicle. The second heat exchanger is set to a regeneration mode in which a source of heat heats the second heat exchanger, then air is passed through the heat exchanger in order to assist with the removal of moisture from the second heat exchanger, the air is then discharged into the atmosphere. The modes of the first and second heat exchangers are then alternated such that the second heat exchanger cools the air and the first heat exchanger is regenerated.
Other aspects of the invention will become apparent by consideration of the detailed description and accompanying drawings.
Before any embodiments of the invention are explained in detail, it is to be understood that the invention is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The invention is capable of other embodiments and of being practiced or of being carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting. The use of “including,” “comprising,” or “having” and variations thereof herein is meant to encompass the items listed thereafter and equivalents thereof as well as additional items. Unless specified or limited otherwise, the terms “mounted,” “connected,” “supported,” and “coupled” and variations thereof are used broadly and encompass both direct and indirect mountings, connections, supports, and couplings. Further, “connected” and “coupled” are not restricted to physical or mechanical connections or couplings.
The humidity control and air conditioning system can be set to switch between the first and second modes of operation, including the necessary changing of valves, dampers and controls, based on a preset amount of time, a signal from a sensor that determines when the desiccant reaches a preset level of wetness, or a signal from a sensor that determines when the air entering the passenger compartment 8 reaches a preset level of humidity.
It is to be understood that the heat source 30 in
In describing
With reference to
In describing
In describing
One advantage of the invention is that the invention is able to control humidity and temperature independently to create a more comfortable environment. Existing technologies require a low temperature refrigerant to handle humidity control. The invention allows the evaporative temperature to be about 10 degrees Celsius higher than existing technologies. Normally, a rise of 1 degree Celsius will increase efficiency by 2% to 3%. The higher evaporative temperature will increase energy efficiency of vehicle humidity control and air conditioning systems.
It is to be understood that in any of the embodiments, air that will be cooled and dried can be taken from the atmosphere, from the passenger compartment 8 or from a combination of the two. Air that will be used to assist in regenerating the desiccant can be taken from the atmosphere, from the passenger compartment 8, or from a combination of the two. Air can selectively be drawn from the passenger compartment 8 or the atmosphere by operating dampers and ducts such that a fluid connection is made between the area where air is drawn from and the area where the air is sent.
It is to be understood that in any of the embodiments, the velocity and volume of air which flows across the heat exchangers 14, 16, 18, or into the passenger compartment 8 can be adjusted automatically by the system or manually by an operator.
It is to be understood that in any of the embodiments, the compressor 10 can be turned off such that cooled refrigerant is not circulated through the heat exchangers 14, 16, 18. In such a case the desiccant on the heat exchanger will still adsorb moisture, thus lowering the humidity level of the air entering the passenger compartment 8.
Although the invention has been described in detail with reference to certain preferred embodiments, variations and modifications exist with the scope and spirit of one or more independent aspects of the invention as described.
Thus, the invention provides, among other things, a humidity control and air conditioning system. Various features and advantages of the invention are set forth in the following claims.
Claims
1. A vehicle comprising:
- a frame;
- a passenger compartment supported by the frame;
- an engine supported by the frame for generating heat;
- first and second heat exchangers coated with desiccant, wherein each of the first and second heat exchangers alternates between a cooling mode and a regeneration mode, wherein the heat exchanger in the cooling mode receives a refrigerant to remove heat from air passing through the heat exchanger in the cooling mode and into the passenger compartment of the vehicle and to remove moisture from the air passing through the heat exchanger in the cooling mode to be adsorbed by the desiccant on the heat exchanger in the cooling mode, and wherein the heat exchanger in the regeneration mode is heated by heat generated by the engine to remove the moisture from the desiccant on the heat exchanger in the regeneration mode and air passes through the heat exchanger in the regeneration mode and is discharged to the atmosphere outside the vehicle.
2. The vehicle of claim 1, further comprising a plurality of air ducts that direct air that has been cooled and dried from the heat exchanger in the cooling mode into the passenger compartment and air that has adsorbed moisture from the desiccant from the heat exchanger in regeneration mode into the atmosphere.
3. The vehicle of claim 2, wherein the air ducts include a plurality of dampers to selectively direct air to and from, the atmosphere, the evaporators, and the passenger compartment.
4. The vehicle of claim 1, wherein the heat exchanger in the regeneration mode is heated by a coolant that is heated by the engine.
5. The vehicle of claim 4, further comprising a first valve which controls the flow of the coolant to the first heat exchanger and a second valve which controls the flow of the coolant to the second heat exchanger.
6. The vehicle of claim 4, wherein each of the first and second heat exchangers includes tubes for passage of the refrigerant and additional tubes for the passage of the coolant.
7. The vehicle of claim 1, wherein the heat exchanger in the regeneration mode is heated by air that is heated by the engine.
8. The vehicle of claim 1, further comprising a reversible fan associated with each of the first and second heat exchangers such that the fan rotates in a first direction when the associated heat exchanger is in the cooling mode and rotates in a second direction when the associated heat exchanger is in the regeneration mode.
9. The vehicle of claim 1, further comprising first and second fans associated with each of the first and second heat exchangers such that the first fan operates to move air in a first direction through the associated heat exchanger in the cooling mode and the second fan operates to move air in the opposite direction when the associated heat exchanger is in the regeneration mode.
10. The vehicle of claim 1, further comprising first and second fans associated with the first heat exchanger, and third and fourth fans being associated with the second heat exchanger such that the first fan operates to move air in a first direction through the first heat exchanger in the cooling mode, the second fan operates to move air in a direction opposite to the first direction when the second heat exchanger is in the regeneration mode, the third fan operates to move air in a second direction through the second heat exchanger in the regeneration mode, and the fourth fan operates to move air in a direction opposite to the second direction when the second heat exchanger is in the cooling mode.
11. The vehicle of claim 1, further comprising a first valve which controls the flow of refrigerant to the first heat exchanger and a second valve which controls the flow of refrigerant to the second heat exchanger.
12. A method for dehumidifying air entering a vehicle, the method comprising: discharging the air from the heat exchanger in the regeneration mode into the atmosphere.
- alternating first and second heat exchangers, each being coated with desiccant, between a cooling mode and a regeneration mode;
- receiving a refrigerant into the heat exchanger in the cooling mode;
- passing air through the heat exchanger in the cooling mode in order to cool the air and remove moisture from the air, then discharging the air from the heat exchanger in the cooling mode into a passenger compartment of the vehicle;
- heating the heat exchanger in the regeneration mode with heat generated by the vehicle's engine;
- passing air through the heat exchanger in the regeneration mode in order to remove moisture from the desiccant on the heat exchanger in the regeneration mode; and
13. The method of claim 11, further comprising directing air that has been cooled and dried from the heat exchanger in the cooling mode through a first air duct and directing air that has adsorbed moisture from the desiccant from the heat exchanger in regeneration mode through a second air duct into the atmosphere.
14. The method of claim 11, further comprising controlling the flow of refrigerant to the first heat exchanger with a first control valve and controlling the flow of refrigerant to the second heat exchanger with a second control valve.
15. The method of claim 11, wherein heating the heat exchanger includes heating the heat exchanger in the regeneration mode with coolant that is heated by the engine.
16. The method of claim 15, further comprising controlling the flow of coolant to the first heat exchanger with a first control valve and controlling the flow of coolant to the second heat exchanger with a second control valve.
17. The method of claim 15, further comprising passing the refrigerant through tubes of the first heat exchanger when operating in the cooling mode and passing the coolant through additional tubes of the first heat exchanger when operating in the regeneration mode.
18. A vehicle comprising:
- a frame;
- a passenger compartment supported by the frame;
- an engine supported by the frame for generating heat;
- first and second heat exchangers coated with desiccant, wherein each of the first and second heat exchangers alternates between a cooling mode and a regeneration mode;
- a plurality of air ducts that direct air that has been cooled and dried from the heat exchanger in the cooling mode into the passenger compartment and air that has adsorbed moisture from the desiccant from the heat exchanger in regeneration mode into the atmosphere;
- a first valve which controls the flow of refrigerant to the first heat exchanger and a second valve which controls the flow of refrigerant to the second heat exchanger;
- wherein the heat exchanger in the cooling mode receives a refrigerant via one of the valves to remove heat from air passing through the heat exchanger in the cooling mode and to remove moisture from the air passing through the heat exchanger in the cooling mode, the air that has passed through the heat exchanger in the cooling mode then being directed to the passenger compartment via the plurality of air ducts, and wherein the heat exchanger in the regeneration mode is heated by heat generated by the engine to remove the moisture from the desiccant on the heat exchanger in the regeneration mode and air passes through the heat exchanger in the regeneration mode and is discharged via the plurality of air ducts to the atmosphere outside the vehicle.
Type: Application
Filed: May 18, 2011
Publication Date: Dec 1, 2011
Inventors: Jun Ouyang (Shanghai), Hu Tang (Shenzhen), Guohui Zhong (Shenzhen), Aigen Deng (Shanghai)
Application Number: 13/110,178
International Classification: B60H 3/00 (20060101); B60H 1/00 (20060101);